English

Effects of acceleration on interatomic interactions

General Relativity and Quantum Cosmology 2025-08-14 v1 High Energy Physics - Theory Quantum Physics

Abstract

The Unruh effect establishes a fundamental equivalence between acceleration and thermality by demonstrating that a uniformly accelerated ground-state detector undergoes excitation as if immersed in a thermal bath. In this paper, we investigate how acceleration influences the interaction between two ground-state atoms that are synchronously and uniformly accelerated in vacuum with proper acceleration aa and coupled to a fluctuating electromagnetic field. We find that the resulting interaction potential comprises both diagonal components (δE)jk(\delta E)^{jk} with j=kj=k, which are present in both inertial and acceleration cases, and off-diagonal components (δE)jk(\delta E)^{jk} with jkj\neq k, which arise exclusively due to acceleration and vanish in the inertial case. The dependence of each component on acceleration and interatomic separation LL generally differs. For small accelerations, the leading-order diagonal components of the van der Waals (vdW) and Casimir-Polder (CP) interaction potentials remain unchanged from their inertial counterparts, exhibiting the standard scaling behaviors L6\sim L^{-6} and L7\sim L^{-7}, respectively. In contrast, the off-diagonal components scale as a2L4\sim a^2L^{-4} in the vdW subregions and a2L5\sim a^2L^{-5} in the CP subregion. However, when the acceleration becomes sufficiently large, both diagonal and off-diagonal components of the vdW and CP interaction potentials are significantly modified, giving rise to entirely new interaction behaviors that deviate from those observed in the inertial case, whether in vacuum or thermal environments, indicating a breakdown of the acceleration-thermality equivalence established by the Unruh effect for single detectors.

Keywords

Cite

@article{arxiv.2506.15942,
  title  = {Effects of acceleration on interatomic interactions},
  author = {Shijing Cheng and Wenting Zhou and Hongwei Yu},
  journal= {arXiv preprint arXiv:2506.15942},
  year   = {2025}
}

Comments

27 pages, 1 figure

R2 v1 2026-07-01T03:24:33.138Z